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D and DD-drop layup optimization of aircraft wing panels under multi-load case design environment

机译:D和DD-DROP叠加优化飞机翼面板在多负载案例设计环境下

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The aerospace industry is on a perpetual drive to optimize structures with developments in modeling and anal-ysis capabilities. The traditionally used laminates with 0 degrees, 90 degrees, +/- 45 degrees orientations are called Legacy QUAD Laminates (LQL). The recent discovery of Trace of an orthotropic stress tensor [A] allows reduction of design variables by the replacement of LQL with equivalent stiffness DD1 (double-double) laminate having self -repeating orientations in a set of [+/- 0/ +/- psi]. The optimized LQL structures are with mid-plane symmetry, excessive ply-migrations, and variability in ply-orientations, which make the manufacturing process cumbersome. On the other hand, DD-laminates are simplified, thinner and free from mid-plane symmetry, thus enable ten-fold reduc-tion in production resources. The present study, an artificial intelligent (AI) genetic-algorithm based stochastic optimizer replaces LQL with DD-laminates, which follows DD-drop design for mass optimization. The optimiza-tion algorithm works with unit-circle failure, buckling mode, and wing-tip deflection design criteria and derives optimal-wing with lowest mass, well suited for design requirements in multiple design load-case. The application of algorithm shows 68-70% mass reduction to an initial full-length ply wing-box model of LQL. The minimization of ply-migrations by D/DD-drop optimization yields structures with better resistance for delamination and well suited for automated production.
机译:航空航天行业是在一个永恒的驱动器上,以优化建模和肛门ysis能力的发展结构。传统上使用的层压板0度,90度,+/- 45度取向称为传统的Quad层压板(LQL)。最近发现正交应力张量的痕迹[a]允许通过在一组[+/- 0 / + / /的相同刚度DD1(双双)层压体中更换LQL来减少设计变量。[+/- 0 / + / - psi]。优化的LQL结构是具有中间平面对称,过度坡度的过度偏移和底层取向的可变性,这使得制造过程麻烦。另一方面,DD层压板被简化,更薄,不含中平面对称性,因此能够在生产资源中进行十倍的重定。本研究,一种基于人工智精(AI)遗传算法的随机优化器用DD层压板取代了LQL,其跟随DD滴设计进行质量优化。 Optimiza-Tion算法适用于单位圆形故障,屈曲模式和翼尖偏转设计标准,并使用最低质量的最佳机翼,适用于多种设计负载箱中的设计要求。算法的应用显示为LQL初始全长坡翼盒模型的68-70%。 D / DD滴优化的帘布层偏移最小化产生具有更好抵抗分层的结构,并且适用于自动化生产。

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